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Examining epitaxial graphene surface conductivity and quantum Hall device stability with Parylene passivation

机译:聚对二甲苯钝化技术研究外延石墨烯表面电导率和量子霍尔器件的稳定性

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摘要

Homogeneous, single-crystal, monolayer epitaxial graphene (EG) is the one of most promising candidates for the advancement of quantized Hall resistance (QHR) standards. A remaining challenge for the electrical characterization of EG-based quantum Hall devices as a useful tool for metrology is that they are electrically unstable when exposed to air due to the adsorption of and interaction with atmospheric molecular dopants. The resulting changes in the charge carrier density become apparent by variations in the surface conductivity, the charge carrier mobility, and may result in a transition from n-type to p-type conductivity. This work evaluates the use of Parylene C and Parylene N as passivation layers for EG. Electronic transport of EG quantum Hall devices and non-contact microwave perturbation measurements of millimeter-sized areas of EG are both performed on bare and Parylene coated samples to test the efficacy of the passivation layers. The reported results, showing a significant improvement in passivation due to Parylene deposition, suggest a method for the mass production of millimeter-scale graphene devices with stable electrical properties.
机译:均质单晶单层外延石墨烯(EG)是提高量化霍尔电阻(QHR)标准的最有希望的候选者之一。作为基于计量学的有用工具,基于EG的量子霍尔器件的电学表征的另一个挑战是,由于暴露于空气中并与大气分子掺杂剂相互作用,当暴露于空气中时,它们是电不稳定的。电荷载流子密度的最终变化通过表面电导率,电荷载流子迁移率的变化而变得明显,并且可能导致从n型电导率转变为p型电导率。这项工作评估了Parylene C和Parylene N作为EG钝化层的用途。 EG量子霍尔器件的电子传输和EG毫米大小区域的非接触式微波扰动测量均在裸露和聚对二甲苯涂层的样品上进行,以测试钝化层的功效。所报告的结果显示出由于聚对二甲苯沉积导致的钝化显着改善,表明了一种批量生产具有稳定电性能的毫米级石墨烯器件的方法。

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